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The stability of lysozyme adsorbed on silica and gallium arsenide surfaces: Preferential destabilization of part of the lysozyme structure by gallium arsenide

机译:吸附在二氧化硅和砷化镓表面上的溶菌酶的稳定性:砷化镓优先使部分溶菌酶结构不稳定

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Changes in the structural stability of lysozyme, upon adsorption to silica and gallium arsenide (GaAs) surfaces, are studied using a combination of hydrogen/deuterium exchange and matrix-assisted laser desorption/ionization mass spectrometry, This relatively new method offers a tool for directly monitoring the structural stability of adsorbed proteins and generates values for the stabilization energy of proteins and their domains in the adsorbed state, The adsorption and desorption kinetics of lysozyme on silica and GaAs surfaces are monitored with ellipsometry, From the adsorption kinetics it can be inferred that lysozyme adsorbs somewhat faster and in slightly higher amounts onto GaAs than on silica. The average Gibbs free energy required to open the lysozyme structure in solution (5.7 kcal/mol) is only slightly reduced upon adsorption onto silica, resulting in a Gibbs free energy of 5.4 kcal/mol, Adsorption onto GaAs surfaces results in a larger decrease in the stability of lysozyme, Moreover, a distinct difference in the stability within the lysozyme molecule is observed. Whereas one part of lysozyme adsorbed onto GaAs has an average structural stability of -5.5 kcal/mol, an approximately equally large part of the molecule has a stability of -3.7 kcal/mol, (C) 2000 Academic Press. [References: 44]
机译:结合氢/氘交换和基质辅助激光解吸/电离质谱法研究了溶菌酶吸附到二氧化硅和砷化镓(GaAs)表面后结构稳定性的变化,这种相对较新的方法提供了一种直接进行分析的工具监测吸附蛋白质的结构稳定性,并得出蛋白质及其在吸附状态下的结构域的稳定能值,用椭偏仪监测二氧化硅和GaAs表面上溶菌酶的吸附和解吸动力学,从吸附动力学可以推断出溶菌酶在GaAs上的吸附速度要比在二氧化硅上快一些,并且吸附量稍高。打开溶液中的溶菌酶结构所需的平均吉布斯自由能(5.7 kcal / mol)仅在吸附到二氧化硅上后才略有减少,导致吉布斯自由能为5.4 kcal / mol。在GaAs表面上的吸附会导致更大的降低此外,观察到溶菌酶分子内稳定性的显着差异。吸附到GaAs上的一部分溶菌酶的平均结构稳定性为-5.5 kcal / mol,而大约相当大一部分分子的稳定性为-3.7 kcal / mol,(C)2000 Academic Press。 [参考:44]

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